Literature DB >> 33778326

Wnt16 Elicits a Protective Effect Against Fractures and Supports Bone Repair in Zebrafish.

Lucy M McGowan1, Erika Kague1, Alistair Vorster1, Elis Newham1, Stephen Cross2, Chrissy L Hammond1.   

Abstract

Bone homeostasis is a dynamic, multicellular process that is required throughout life to maintain bone integrity, prevent fracture, and respond to skeletal damage. WNT16 has been linked to bone fragility and osteoporosis in human genome wide-association studies, as well as the functional hematopoiesis of leukocytes in vivo. However, the mechanisms by which WNT16 promotes bone health and repair are not fully understood. In this study, CRISPR-Cas9 was used to generate mutant zebrafish lacking Wnt16 (wnt16 -/- ) to study its effect on bone dynamically. The wnt16 mutants displayed variable tissue mineral density (TMD) and were susceptible to spontaneous fractures and the accumulation of bone calluses at an early age. Fractures were induced in the lepidotrichia of the caudal fins of wnt16 -/- and WT zebrafish; this model was used to probe the mechanisms by which Wnt16 regulates skeletal and immune cell dynamics in vivo. In WT fins, wnt16 expression increased significantly during the early stages for bone repair. Mineralization of bone during fracture repair was significantly delayed in wnt16 mutants compared with WT zebrafish. Surprisingly, there was no evidence that the recruitment of innate immune cells to fractures or soft callus formation was altered in wnt16 mutants. However, osteoblast recruitment was significantly delayed in wnt16 mutants postfracture, coinciding with precocious activation of the canonical Wnt signaling pathway. In situ hybridization suggests that canonical Wnt-responsive cells within fractures are osteoblast progenitors, and that osteoblast differentiation during bone repair is coordinated by the dynamic expression of runx2a and wnt16. This study highlights zebrafish as an emerging model for functionally validating osteoporosis-associated genes and investigating fracture repair dynamically in vivo. Using this model, it was found that Wnt16 protects against fracture and supports bone repair, likely by modulating canonical Wnt activity via runx2a to facilitate osteoblast differentiation and bone matrix deposition.
© 2021 The Authors. JBMR Plus published by Wiley Periodicals LLC. on behalf of American Society for Bone and Mineral Research. © 2021 The Authors. JBMR Plus published by Wiley Periodicals LLC. on behalf of American Society for Bone and Mineral Research.

Entities:  

Keywords:  FRACTURE HEALING; GENETIC ANIMAL MODELS; OSTEOBLASTS; OSTEOPOROSIS; WNT

Year:  2021        PMID: 33778326      PMCID: PMC7990157          DOI: 10.1002/jbm4.10461

Source DB:  PubMed          Journal:  JBMR Plus        ISSN: 2473-4039


  59 in total

1.  WNT16 overexpression partly protects against glucocorticoid-induced bone loss.

Authors:  Claes Ohlsson; Karin H Nilsson; Petra Henning; Jianyao Wu; Karin L Gustafsson; Matti Poutanen; Ulf H Lerner; Sofia Movérare-Skrtic
Journal:  Am J Physiol Endocrinol Metab       Date:  2018-02-06       Impact factor: 4.310

2.  Neutrophils contribute to fracture healing by synthesizing fibronectin+ extracellular matrix rapidly after injury.

Authors:  Okan W Bastian; Leo Koenderman; Jacqueline Alblas; Luke P H Leenen; Taco J Blokhuis
Journal:  Clin Immunol       Date:  2016-02-12       Impact factor: 3.969

3.  Predictive value of BMD for hip and other fractures.

Authors:  Olof Johnell; John A Kanis; Anders Oden; Helena Johansson; Chris De Laet; Pierre Delmas; John A Eisman; Seiko Fujiwara; Heikki Kroger; Dan Mellstrom; Pierre J Meunier; L Joseph Melton; Terry O'Neill; Huibert Pols; Jonathan Reeve; Alan Silman; Alan Tenenhouse
Journal:  J Bone Miner Res       Date:  2005-03-07       Impact factor: 6.741

Review 4.  Osteomacs and Bone Regeneration.

Authors:  Lena Batoon; Susan Marie Millard; Liza Jane Raggatt; Allison Robyn Pettit
Journal:  Curr Osteoporos Rep       Date:  2017-08       Impact factor: 5.096

5.  Osteoblast-derived WNT16 represses osteoclastogenesis and prevents cortical bone fragility fractures.

Authors:  Sofia Movérare-Skrtic; Petra Henning; Xianwen Liu; Kenichi Nagano; Hiroaki Saito; Anna E Börjesson; Klara Sjögren; Sara H Windahl; Helen Farman; Bert Kindlund; Cecilia Engdahl; Antti Koskela; Fu-Ping Zhang; Emma E Eriksson; Farasat Zaman; Ann Hammarstedt; Hanna Isaksson; Marta Bally; Ali Kassem; Catharina Lindholm; Olof Sandberg; Per Aspenberg; Lars Sävendahl; Jian Q Feng; Jan Tuckermann; Juha Tuukkanen; Matti Poutanen; Roland Baron; Ulf H Lerner; Francesca Gori; Claes Ohlsson
Journal:  Nat Med       Date:  2014-10-12       Impact factor: 53.440

Review 6.  Regulation of Proliferation, Differentiation and Functions of Osteoblasts by Runx2.

Authors:  Toshihisa Komori
Journal:  Int J Mol Sci       Date:  2019-04-04       Impact factor: 5.923

7.  Uptake of osteoblast-derived extracellular vesicles promotes the differentiation of osteoclasts in the zebrafish scale.

Authors:  Jingjing Kobayashi-Sun; Shiori Yamamori; Mao Kondo; Junpei Kuroda; Mika Ikegame; Nobuo Suzuki; Kei-Ichiro Kitamura; Atsuhiko Hattori; Masaaki Yamaguchi; Isao Kobayashi
Journal:  Commun Biol       Date:  2020-04-23

8.  Immune Suppressive and Bone Inhibitory Effects of Prednisolone in Growing and Regenerating Zebrafish Tissues.

Authors:  Karina Geurtzen; Aude Vernet; Andrew Freidin; Martina Rauner; Lorenz C Hofbauer; Jürgen E Schneider; Michael Brand; Franziska Knopf
Journal:  J Bone Miner Res       Date:  2017-09-13       Impact factor: 6.741

9.  The zebrafish lysozyme C promoter drives myeloid-specific expression in transgenic fish.

Authors:  Chris Hall; Maria Vega Flores; Thilo Storm; Kathy Crosier; Phil Crosier
Journal:  BMC Dev Biol       Date:  2007-05-04       Impact factor: 1.978

Review 10.  The Alternative Faces of Macrophage Generate Osteoclasts.

Authors:  N Lampiasi; R Russo; F Zito
Journal:  Biomed Res Int       Date:  2016-02-08       Impact factor: 3.411

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  3 in total

Review 1.  "Genetic scissors" CRISPR/Cas9 genome editing cutting-edge biocarrier technology for bone and cartilage repair.

Authors:  Chao Li; Yawei Du; Tongtong Zhang; Haoran Wang; Zhiyong Hou; Yingze Zhang; Wenguo Cui; Wei Chen
Journal:  Bioact Mater       Date:  2022-10-07

Review 2.  Functional Validation of Osteoporosis Genetic Findings Using Small Fish Models.

Authors:  Erika Kague; David Karasik
Journal:  Genes (Basel)       Date:  2022-01-30       Impact factor: 4.096

Review 3.  The genetic overlap between osteoporosis and craniosynostosis.

Authors:  Erika Kague; Carolina Medina-Gomez; Simeon A Boyadjiev; Fernando Rivadeneira
Journal:  Front Endocrinol (Lausanne)       Date:  2022-09-26       Impact factor: 6.055

  3 in total

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